Matches in SemOpenAlex for { <https://semopenalex.org/work/W2521943440> ?p ?o ?g. }
- W2521943440 abstract "A basic attribute for turbine blade film cooling is that coolant injected should be largely passively convected by the local base flow. However the effective working of the conventional wisdom may be compromised when the cooling injection strongly interacts with the base flow. Rotor blade tip of a transonic high-pressure (HP) turbine is one of such challenging regions for which basic understanding of the relevant aerothermal behavior as a basis for effective heat transfer/cooling design is lacking. The need to increase our understanding and predictability for high speed transonic blade tip has been underlined by some recent findings that tip heat transfer characteristics in a transonic flow are qualitatively different from those at a low speed. Although there have been extensive studies previously on squealer blade tip cooling, there have been no published experimental studies under a transonic flow condition. The present study investigates the effect of cooling injection on a transonic squealer tip through a closely combined experimental and CFD effort. The experimental and computational results as presented in Part 1 have consistently revealed some distinctive aerothermal signatures of the strong coolant-base flow interactions. In this paper as Part 2, detailed analyses using the validated CFD solutions are conducted to identify, analyze and understand the causal links between the aerothermal signatures and the driving flow structures and physical mechanisms. It is shown that the interactions between the coolant injection and the base Over-Tip Leakage (OTL) flow in the squealer tip region are much stronger in the frontal subsonic region than the rear transonic region. The dominant vortical flow structure is a counter-rotating vortex pair (CRVP) associated with each discrete cooling injection. High HTC stripes on the cavity floor are directly linked to the impingement heat transfer augmentation associated with one leg of the CRVP, which is considerably enhanced by the near-floor fluid movement driven by the overall pressure gradient along the camber line. The strength of the coolant-base flow interaction as signified by the augmented values of the HTC stripes is seen to correlate to the interplay and balance between the OTL flow and the CRVP structure. As such, for the frontal subsonic part of the cavity, there is a prevailing spanwise inward flow initiated by the CRVP, which has profoundly changed the local base flow, leading to high HTC stripes on the cavity floor. On the other hand, for the rear high speed part, the high inertia of the OTL flow dominates, thus the vortical flow disturbances associated with the CRVP are largely passively convected, leaving clear signatures on the top surface of the suction surface rim. A further interesting side-effect of the strong interaction in the frontal subsonic region is that there is considerable net heat flux reduction in an area seemingly unreachable by the injected coolant. The present results have confirmed that this is due to the large reduction in the local HTC as a consequence of the upstream propagated impact of the strong coolant-base flow interactions." @default.
- W2521943440 created "2016-09-30" @default.
- W2521943440 creator A5039837606 @default.
- W2521943440 creator A5058345646 @default.
- W2521943440 creator A5080944719 @default.
- W2521943440 creator A5086764741 @default.
- W2521943440 creator A5089715574 @default.
- W2521943440 date "2016-06-13" @default.
- W2521943440 modified "2023-09-27" @default.
- W2521943440 title "Cooling Injection Effect on a Transonic Squealer Tip: Part 2 — Analysis of Aerothermal Interaction Physics" @default.
- W2521943440 cites W1882689307 @default.
- W2521943440 cites W1963520074 @default.
- W2521943440 cites W1984339478 @default.
- W2521943440 cites W1988106630 @default.
- W2521943440 cites W1990456272 @default.
- W2521943440 cites W1991495800 @default.
- W2521943440 cites W1994987915 @default.
- W2521943440 cites W1997878901 @default.
- W2521943440 cites W2002654817 @default.
- W2521943440 cites W2011718931 @default.
- W2521943440 cites W2024431012 @default.
- W2521943440 cites W2031276413 @default.
- W2521943440 cites W2031804198 @default.
- W2521943440 cites W2065755589 @default.
- W2521943440 cites W2066677017 @default.
- W2521943440 cites W2068578574 @default.
- W2521943440 cites W2072466661 @default.
- W2521943440 cites W2077818637 @default.
- W2521943440 cites W2079831813 @default.
- W2521943440 cites W2080019406 @default.
- W2521943440 cites W2092430964 @default.
- W2521943440 cites W2098114572 @default.
- W2521943440 cites W2108258158 @default.
- W2521943440 cites W2111742864 @default.
- W2521943440 cites W2116964857 @default.
- W2521943440 cites W2122992009 @default.
- W2521943440 cites W2149236860 @default.
- W2521943440 cites W2156711030 @default.
- W2521943440 cites W2169016562 @default.
- W2521943440 cites W2169645534 @default.
- W2521943440 cites W2522564671 @default.
- W2521943440 cites W2992342851 @default.
- W2521943440 doi "https://doi.org/10.1115/gt2016-57587" @default.
- W2521943440 hasPublicationYear "2016" @default.
- W2521943440 type Work @default.
- W2521943440 sameAs 2521943440 @default.
- W2521943440 citedByCount "7" @default.
- W2521943440 countsByYear W25219434402016 @default.
- W2521943440 countsByYear W25219434402017 @default.
- W2521943440 countsByYear W25219434402018 @default.
- W2521943440 countsByYear W25219434402019 @default.
- W2521943440 countsByYear W25219434402020 @default.
- W2521943440 crossrefType "proceedings-article" @default.
- W2521943440 hasAuthorship W2521943440A5039837606 @default.
- W2521943440 hasAuthorship W2521943440A5058345646 @default.
- W2521943440 hasAuthorship W2521943440A5080944719 @default.
- W2521943440 hasAuthorship W2521943440A5086764741 @default.
- W2521943440 hasAuthorship W2521943440A5089715574 @default.
- W2521943440 hasConcept C103838597 @default.
- W2521943440 hasConcept C121332964 @default.
- W2521943440 hasConcept C127413603 @default.
- W2521943440 hasConcept C13393347 @default.
- W2521943440 hasConcept C146978453 @default.
- W2521943440 hasConcept C192562407 @default.
- W2521943440 hasConcept C57879066 @default.
- W2521943440 hasConcept C78519656 @default.
- W2521943440 hasConceptScore W2521943440C103838597 @default.
- W2521943440 hasConceptScore W2521943440C121332964 @default.
- W2521943440 hasConceptScore W2521943440C127413603 @default.
- W2521943440 hasConceptScore W2521943440C13393347 @default.
- W2521943440 hasConceptScore W2521943440C146978453 @default.
- W2521943440 hasConceptScore W2521943440C192562407 @default.
- W2521943440 hasConceptScore W2521943440C57879066 @default.
- W2521943440 hasConceptScore W2521943440C78519656 @default.
- W2521943440 hasLocation W25219434401 @default.
- W2521943440 hasOpenAccess W2521943440 @default.
- W2521943440 hasPrimaryLocation W25219434401 @default.
- W2521943440 hasRelatedWork W1971378961 @default.
- W2521943440 hasRelatedWork W1994987915 @default.
- W2521943440 hasRelatedWork W2011718931 @default.
- W2521943440 hasRelatedWork W2024431012 @default.
- W2521943440 hasRelatedWork W2031276413 @default.
- W2521943440 hasRelatedWork W2033387741 @default.
- W2521943440 hasRelatedWork W2063064340 @default.
- W2521943440 hasRelatedWork W2063295939 @default.
- W2521943440 hasRelatedWork W2066677017 @default.
- W2521943440 hasRelatedWork W2086922685 @default.
- W2521943440 hasRelatedWork W2113344906 @default.
- W2521943440 hasRelatedWork W2122992009 @default.
- W2521943440 hasRelatedWork W2325757696 @default.
- W2521943440 hasRelatedWork W2522564671 @default.
- W2521943440 hasRelatedWork W2891313453 @default.
- W2521943440 hasRelatedWork W2986461318 @default.
- W2521943440 hasRelatedWork W2989272855 @default.
- W2521943440 hasRelatedWork W3010372744 @default.
- W2521943440 hasRelatedWork W3120609366 @default.
- W2521943440 hasRelatedWork W3121047354 @default.
- W2521943440 isParatext "false" @default.
- W2521943440 isRetracted "false" @default.
- W2521943440 magId "2521943440" @default.